Kobayashi Frisk Lisa, Verma Manish, Bešlija Faruk, Lin Chen-Hao P, Patil Nishighanda, Chetia Sumana, Trobaugh Jason W, Culver Joseph P, Durduran Turgut
ICFO-Institut de Ciències Fotòniques, The Barcelona Institute of Science and Technology, Castelldefels (Barcelona), Spain.
Department of Physics, Washington University in St. Louis, St. Louis, Missouri 63110, USA.
Biomed Opt Express. 2024 Jan 19;15(2):875-899. doi: 10.1364/BOE.502421. eCollection 2024 Feb 1.
Diffuse optical methods including speckle contrast optical spectroscopy and tomography (SCOS and SCOT), use speckle contrast () to measure deep blood flow. In order to design practical systems, parameters such as signal-to-noise ratio (SNR) and the effects of limited sampling of statistical quantities, should be considered. To that end, we have developed a method for simulating speckle contrast signals including effects of detector noise. The method was validated experimentally, and the simulations were used to study the effects of physical and experimental parameters on the accuracy and precision of . These results revealed that systematic detector effects resulted in decreased accuracy and precision of in the regime of low detected signals. The method can provide guidelines for the design and usage of SCOS and/or SCOT instruments.
包括散斑对比度光学光谱学和断层扫描术(SCOS和SCOT)在内的漫射光学方法,利用散斑对比度()来测量深部血流。为了设计实用的系统,应考虑诸如信噪比(SNR)以及统计量有限采样的影响等参数。为此,我们开发了一种用于模拟散斑对比度信号(包括探测器噪声影响)的方法。该方法通过实验得到了验证,并且这些模拟被用于研究物理和实验参数对散斑对比度()准确性和精度的影响。这些结果表明,在低检测信号的情况下,系统探测器效应会导致散斑对比度()的准确性和精度降低。该方法可为SCOS和/或SCOT仪器的设计和使用提供指导。